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Graphene Oxide-Based Stimuli-Responsive Platforms for Biomedical Applications

期刊

MOLECULES
卷 26, 期 9, 页码 -

出版社

MDPI
DOI: 10.3390/molecules26092797

关键词

graphene oxide; stimuli-responsive; pH; wound healing; cancer therapy; drug delivery

资金

  1. Basic Research Program through the National Research Foundation of Korea (NRF) - Ministry of Education [NRF-2018R1A6A1A03025582]
  2. National Research Foundation of Korea [NRF-2019R1D1A3A03103828]

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Graphene, a two-dimensional sp(2) hybridized carbon material, has garnered significant attention for its excellent properties in stimuli-responsive applications. Stimuli-responsive materials in the biomedical field are of particular interest for their potential to change behavior under different conditions, with graphene-based materials showing superior biocompatibility and various applications.
Graphene is a two-dimensional sp(2) hybridized carbon material that has attracted tremendous attention for its stimuli-responsive applications, owing to its high surface area and excellent electrical, optical, thermal, and mechanical properties. The physicochemical properties of graphene can be tuned by surface functionalization. The biomedical field pays special attention to stimuli-responsive materials due to their responsive abilities under different conditions. Stimuli-responsive materials exhibit great potential in changing their behavior upon exposure to external or internal factors, such as pH, light, electric field, magnetic field, and temperature. Graphene-based materials, particularly graphene oxide (GO), have been widely used in stimuli-responsive applications due to their superior biocompatibility compared to other forms of graphene. GO has been commonly utilized in tissue engineering, bioimaging, biosensing, cancer therapy, and drug delivery. GO-based stimuli-responsive platforms for wound healing applications have not yet been fully explored. This review describes the effects of different stimuli-responsive factors, such as pH, light, temperature, and magnetic and electric fields on GO-based materials and their applications. The wound healing applications of GO-based materials is extensively discussed with cancer therapy and drug delivery.

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